基于嵌入式传感器的混合预制混凝土楼板热性能研究。

IF 3.6
Shane Newell, Jamie Goggins
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引用次数: 16

摘要

混凝土结构随着温度的变化而膨胀和收缩,这可能导致结构应变和开裂。然而,关于混合混凝土楼盖结构的可靠现场数据有限。这些数据的缺乏影响了我们对混凝土结构如何响应热效应的理解,并最终影响了混凝土结构的整体设计。因此,作者在建设教育建筑的过程中实施了全面的结构和环境监测策略。传感器被嵌入混合混凝土格子梁平板的预制和原位组件中,以便可以研究地板在制造、施工和运营阶段的热响应。在施工阶段,使用嵌入式传感器监测地板的热性能的许多方面。本文探讨了养护过程中的早期热效应以及环境温度(日、季)变化和太阳辐射对混凝土楼板性能的影响。利用嵌入式传感器的数据计算约束系数和混凝土的原位热膨胀约束系数。对混合混凝土楼板的热行为进行了数值模拟,并利用实时现场测量进行了验证。本文所提供和分析的数据可用于提高对混合混凝土楼板热性能的理解和建模。这将有助于改善可持续建筑的设计,因为它允许地板的环境性能在控制内部环境、热质量和能源效率方面得到优化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Investigation of Thermal Behaviour of a Hybrid Precasted Concrete Floor using Embedded Sensors.

Investigation of Thermal Behaviour of a Hybrid Precasted Concrete Floor using Embedded Sensors.

Investigation of Thermal Behaviour of a Hybrid Precasted Concrete Floor using Embedded Sensors.

Investigation of Thermal Behaviour of a Hybrid Precasted Concrete Floor using Embedded Sensors.

Concrete structures expand and contract in response to temperature changes which can result in structural strain and cracking. However, there is a limited amount of robust field data on hybrid concrete floor structures. Shortage of such data impacts on our understanding of how concrete structures respond to thermal effects and ultimately the overall design of concrete structures. Thus, a comprehensive structural and environmental monitoring strategy was implemented by the authors during the construction of an educational building. Sensors were embedded in the precast and in situ components of a hybrid concrete lattice girder flat slab so that the thermal response of the floor during the manufacture, construction and operational stages could be investigated. Many aspects of the thermal behaviour of the floor during the construction phase were monitored using the embedded sensors. The early-age thermal effects during curing and the impact of the variation of ambient temperature (daily and seasonal) and solar radiation on the behaviour of concrete floor is explored in the paper. Values for restraint factors and the in situ restrained coefficient of thermal expansion of concrete are calculated using the data from the embedded sensors. Numerical modelling of the thermal behaviour of the hybrid concrete floor was undertaken and validated using the real-time field measurements. The data presented and analysed in this paper can be used to improve the understanding and modelling of the thermal behaviour of a hybrid concrete floor. This will assist with improved design of sustainable buildings as it allows the environmental performance of the floor to be optimised with respect to controlling the internal environment, thermal mass and energy efficiency.

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